20 citations to https://www.mathnet.ru/rus/tit5
  1. Yi Luo, Hao-Kun Mao, Qiong Li, Nan Chen, “An Information-Theoretic Secure Group Authentication Scheme for Quantum Key Distribution Networks”, IEEE Trans. Commun., 71:9 (2023), 5420  crossref
  2. Khodakhast Bibak, Bruce M. Kapron, Venkatesh Srinivasan, “Authentication of variable length messages in quantum key distribution”, EPJ Quantum Technol., 9:1 (2022)  crossref
  3. Wei Wu, Haipeng Peng, Lixiang Li, Communications in Computer and Information Science, 1744, Data Mining and Big Data, 2022, 255  crossref
  4. E. O. Kiktenko, A. S. Zelenetsky, A. K. Fedorov, “Practical quantum multiparty signatures using quantum-key-distribution networks”, Phys. Rev. A, 105:1 (2022), 12408–18  mathnet  crossref  isi  scopus
  5. Juliet McLeod, Ritajit Majumdar, Sanchari Das, Lecture Notes in Computer Science, 13353, Computational Science – ICCS 2022, 2022, 164  crossref
  6. R Venkateswari, S Arun Kannan, K.R. Siva Bharathi, 2022 International Conference on Intelligent Innovations in Engineering and Technology (ICIIET), 2022, 124  crossref
  7. Daniel A. Vajner, Lucas Rickert, Timm Gao, Koray Kaymazlar, Tobias Heindel, “Quantum Communication Using Semiconductor Quantum Dots”, Adv Quantum Tech, 5:7 (2022)  crossref
  8. Mohd Hirzi Adnan, Zuriati Ahmad Zukarnain, Nur Ziadah Harun, “Quantum Key Distribution for 5G Networks: A Review, State of Art and Future Directions”, Future Internet, 14:3 (2022), 73  crossref
  9. А. С. Трушечкин, Е. О. Киктенко, Д. А. Кронберг, А. К. Федоров, “Стойкость метода обманных состояний в квантовой криптографии”, УФН, 191:1 (2021), 93–109  mathnet  crossref  isi  scopus; A. S. Trushechkin, E. O. Kiktenko, D. A. Kronberg, A. K. Fedorov, “Security of the decoy state method for quantum key distribution”, Phys. Usp., 64:1 (2021), 88–102  mathnet  crossref
  10. Piotr Zawadzki, “Advances in quantum secure direct communication”, IET Quantum Communication, 2:2 (2021), 54  crossref
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